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Published on: October 28, 2022
Lipopolysaccharide exposure during the early postnatal period adversely affects the structure and function of the
Zankhana R Master1, Andrea Porzionato2, Kalpashri Kesavan1
1Department of Pediatrics, Division of Neonatology, The Johns Hopkins University School of Medicine, Baltimore, Maryland;
Insights
Early inflammation in newborn rats alters the carotid body (CB), increasing breathing problems like apnea. These changes persist, impacting infant breathing and potentially causing intermittent desaturations.
Area of Science:
- Neonatal physiology
- Respiratory control
- Neuroinflammation
Background:
- The carotid body (CB) regulates breathing, especially in premature infants, influencing apnea frequency.
- Inflammation impacts adult CB structure and chemosensitivity, but its neonatal effects are unknown.
Purpose of the Study:
- To investigate if early postnatal inflammation causes lasting structural and functional changes in the developing rat CB.
- To model spontaneous intermittent desaturations in newborns.
Main Methods:
- Rat pups at postnatal day 2 (P2) received lipopolysaccharide (LPS) or saline (SAL) intraperitoneally.
- At P9-10, intermittent hypoxic (IH) events, ventilatory responses, and carotid sinus nerve chemosensitivity were measured.
- CB inflammatory markers, cell volumes, and dopamine levels were analyzed.
Main Results:
- LPS-exposed pups showed more IH events and reduced ventilatory responses to oxygen changes.
- Hypoxic chemosensitivity of the carotid sinus nerve was attenuated in LPS-exposed animals.
- CB changes included increased inflammatory cytokines, decreased type II cell volume, and elevated dopamine.
Conclusions:
- Early postnatal inflammation adversely affects neonatal rat CB structure and function.
- These changes are linked to increased intermittent desaturations, mirroring premature infant breathing issues.
- This study establishes a novel newborn model for studying spontaneous intermittent desaturations.
Abstract:
The carotid body (CB) substantially influences breathing in premature infants by affecting the frequency of apnea and periodic breathing. In adult animals, inflammation alters the structure and chemosensitivity of the CB, yet it is not known if this pertains to neonates. We hypothesized that early postnatal inflammation leads to morphological and functional changes in the developing rat CB, which persists for 1 wk after the initial provoking insult. To test our hypothesis, we exposed rat pups at postnatal day 2 (P2) to lipopolysaccharide (LPS; 100 μg/kg) or saline (SAL) intraperitoneally. At P9-10 (1 wk after treatment), LPS-exposed animals had significantly more spontaneous intermittent hypoxic (IH) events, attenuated ventilatory responses to changes in oxygen tension (measured by whole body plethysmography), and attenuated hypoxic chemosensitivity of the carotid sinus nerve (measured in vitro), compared with SAL-exposed controls. These functional changes were associated with the following: 1) increased inflammatory cytokine mRNA levels; 2) decreased volume of supportive type II cells; and 3) elevated dopamine levels (a major inhibitory neuromodulator) within the CB. These findings suggest that early postnatal inflammation in newborn rats adversely affects the structure and function of the CB and is associated with increased frequency of intermittent desaturations, similar to the phenomenon observed in premature infants. Furthermore, this is the first newborn model of spontaneous intermittent desaturations that may be used to understand the mechanisms contributing to IH events in newborns.
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